Traumatic brain injury (TBI) is caused by a sudden force applied to the head. Following primary injuries resulting from the physical impact, TBI survivors commonly experience secondary injuries, including cognitive deficits and neurological dysfunctions that are associated with physiological responses to the initial injury1. It is estimated that roughly 69 million individuals worldwide suffer from TBI annually2. In the United States alone, approximately 2.5 million TBI-related emergency room visits and hospitalizations occur each year, making TBI one of the leading causes of disability and death among children and young adults3. TBI can be classified as mild, moderate, or severe, with mild TBI (mTBI) accounting for approximately 70%-90% of TBI cases4. Histological and cognitive TBI pathology can occur within minutes to hours of injury, and the effects of TBI can persist for months to years after initial damage5.
The development of experimental models has been instrumental in understanding the effects and underlying mechanisms of TBI. One such model, the lateral fluid percussion injury (LFPI), is commonly used to assess TBI in vivo. LFPI closely reproduces pathologies associated with human TBI, including vascular disruptions, hemorrhages, neuronal loss, inflammation, gliosis, and molecular disturbances6,7,8. The LFPI technique is used for a diverse set of experimental applications, including modeling pediatric TBI, as well as chronic neurodegenerative conditions, such as chronic traumatic encephalopathy9,10. LFPI is a well-defined and reproducible method of experimental TBI that allows for the severity of the injury to be adjusted11. The LFPI device has several important components, including: a pendulum with a weighted hammer, a piston, a fluid-filled cylinder, a pressure transducer, a digital oscilloscope, and a small tube at the end of the cylinder with a Luer lock which attaches to a hub on the animal's skull (Figure 1). LFPI works by swinging the pendulum into the piston, creating a wave of pressure through the fluid (degassed deionized water or saline) into the brain of the attached animal; this increases intracranial pressure, thus replicating the mechanical features and biological changes of TBI12. Additionally, animals used in LFPI experiments undergo a craniectomy in order to expose the brain to the impact of the fluid pressure of the device.
Routine maintenance and monitoring are necessary to ensure that the LFPI device is accurately functioning. The following methods are vital in preventing the introduction of contaminating air bubbles into the device. Here, we demonstrate methods to properly clean, fill, and assemble the LFPI device. We will also discuss oscilloscope outputs and mouse righting times as ways to confirm the viability of the LFPI.